Gradiometric flux qubits with tunable gap
arXiv:1210.3982 · doi:10.1088/1367-2630/15/4/045001
Abstract
For gradiometric three-Josephson-junction flux qubits, we perform a systematic study on the tuning of the minimal transition frequency, the so-called qubit gap. By replacing one of the qubit's Josephson junctions by a dc SQUID, the critical current of this SQUID and, in turn, the qubit gap can be tuned in situ by a control flux threading the SQUID loop. We present spectroscopic measurements demonstrating a well-defined controllability of the qubit gap between zero and more than 10 GHz. In the future, this enables one to tune the qubit into and out of resonance with other superconducting quantum circuits, while operating the qubit at its symmetry point with optimal dephasing properties. The experimental data agree very well with model calculations based on the full qubit Hamiltonian. From a numerical fit, we determine the Josephson coupling and the charging energies of the qubit junctions. The derived values agree well with those measured for other junctions fabricated on the same chip. We also demonstrate the biasing of gradiometric flux qubits near the symmetry point by trapping an odd number of flux quanta in the gradiometer loop. In this way, we study the effect of the significant kinetic inductance, thereby obtaining valuable information for the qubit design.
23 pages, 9 figures
References in corpus (21)
- Charge insensitive qubit design derived from the Cooper pair box
- Coupling Superconducting Qubits via a Cavity Bus
- Beyond the Jaynes-Cummings model: circuit QED in the ultrastrong coupling regime
- Demonstration of Two-Qubit Algorithms with a Superconducting Quantum Processor
- Observation of the Bloch-Siegert Shift in a Qubit-Oscillator System in the Ultrastrong Coupling Regime
- Climbing the Jaynes-Cummings Ladder and Observing its Sqrt(n) Nonlinearity in a Cavity QED System
- Single artificial-atom lasing
- Measurements of the Correlation Function of a Microwave Frequency Single Photon Source
- Two-photon probe of the Jaynes-Cummings model and symmetry breaking in circuit QED
- Path Entanglement of Continuous-Variable Quantum Microwaves
- Tuning the Gap of a Superconducting Flux Qubit
- Dephasing of a superconducting flux qubit
- Two-resonator circuit QED: A superconducting quantum switch
- Strong Coupling of a Quantum Oscillator to a Flux Qubit at its Symmetry Point
- Coherent oscillations in a superconducting tunable flux qubit manipulated without microwaves
- Phase-Coherent Dynamics of a Superconducting Flux Qubit with Capacitive-Bias Readout
- Tuned transition from quantum to classical for macroscopic quantum states
- Fabrication Technology of and Symmetry Breaking in Superconducting Quantum Circuits
- Classical analysis of phase-locking transients and Rabi-type oscillations in microwave-driven Josephson junctions
- Investigation of resonant and transient phenomena in Josephson junction flux qubits
- Tunability of Excited-State Energy Levels of Four-Josephson-Junction Circuit in Crossover from Double-Well to Single-Well Potential